Model-based Design and Simulation of a Soft Robotic Gripper for Fabric Material Handling

Author:

Wang Bowen1ORCID,Urbanic Ruth Jill

Affiliation:

1. University of Windsor

Abstract

Abstract Fabric and textile materials are widely used in many industrial applications, especially in automotive, aviation, and consumer goods. Currently, there is a lack of automatic solutions for rapid and effective fabric handling operations that can be expanded to various applications, causing economic loss, workplace safety issues, and process bottlenecks. As a bio-inspired novel technology, soft robotic grippers provide new opportunities for the automation of fabric handling tasks. In this research, an elastomer-based tendon-actuated soft gripper for fabric pick and place tasks is developed through a model-based design approach. Based on finite element analysis, the gripper design is simulated, modified, and validated. Multiple design variables and their impacts are studied. Detailed motion patterns of the underactuated structure are obtained. After the design is established, a prototype is fabricated trough additive manufacturing and overmolding processes to physically test the functionality of the gripper and further validate the simulation results.

Publisher

Research Square Platform LLC

Cited by 5 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Development of robotic automation solutions for limp flexible material handling leveraging a finite element modelling technique;The International Journal of Advanced Manufacturing Technology;2024-03-16

2. A Toolchain for Automated Control and Simulation of Robot Teams in Carbon-Fiber-Reinforced Polymers Production;Applied Sciences;2024-03-15

3. Research progress of automatic grasping methods for garment fabrics;International Journal of Clothing Science and Technology;2023-10-25

4. Automated Stack Singulation for Technical Textiles Using Sensor Supervised Low Pressure Suction Grippers;Annals of Scientific Society for Assembly, Handling and Industrial Robotics 2022;2023

5. Design and Fabrication of Novel Compliant Mechanisms and Origami Structures for Specialty Grippers;Towards Sustainable Customization: Bridging Smart Products and Manufacturing Systems;2021-11-01

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